Tissue Bioengineering

Tissue bioengineering is the design and construction of biological substitutes that restore, maintain, or improve the function of damaged tissues. It combines living cells with biomaterials, three-dimensional scaffolds, and biochemical or mechanical signals to guide cell attachment, proliferation, differentiation, and extracellular matrix formation under controlled conditions. In biology and biomedical research, these engineered tissues support studies of development, disease, and cell behavior while providing platforms for drug testing and regenerative medicine. Advances in scaffold design, biomaterial processing, and tissue maturation may improve the development of functional grafts and reduce reliance on donor tissue.

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Research

JoVE Journal - Bioengineering

Imaging-Guided Bioreactor for Generating Bioengineered Airway Tissue

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Cited by 2 •

2022

The protocol describes an imaging-enabled bioreactor that allows the selective removal of the endogenous epithelium from the rat trachea and homogenous distribution of exogenous cells on the lumen surface, followed by long-term in vitro culture of the cell-tissue construct.

Research

JoVE Journal - Bioengineering
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Cardiac Spheroids as in vitro Bioengineered Heart Tissues to Study Human Heart Pathophysiology

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Cited by 27 •

2021

This protocol aims to fabricate 3D cardiac spheroids (CSs) by co-culturing cells in hanging drops. Collagen-embedded CSs are treated with doxorubicin (DOX, a cardiotoxic agent) at physiological concentrations to model heart failure. In vitro testing using DOX-treated CSs may be used to identify novel therapies for heart failure patients.

Bioengineering of Humanized Bone Marrow Microenvironments in Mouse and Their Visualization by Live Imaging

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Cited by 28 •

2017

A method to create and live-image different humanized bone-marrow niches in mice is presented. Based on the supportive niche created by human mesenchymal cells, the addition of human endothelial cells induces the formation of human vessels, while the addition of rhBMP-2 induces the formation of human-mouse chimeric mature bone tissue.

Establishing an Octopus Ecosystem for Biomedical and Bioengineering Research

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Cited by 6 •

2021

Understanding the unique physiological and anatomical structures of octopuses can greatly impact biomedical research. This guide demonstrates how to set-up and maintain a marine environment to accommodate this species and includes state-of-the-art imaging and analytical approaches to visualize octopus' nervous system anatomy and function.

Antimicrobial Characterization of Advanced Materials for Bioengineering Applications

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Cited by 93 •

2018

We present a protocol for the antimicrobial characterization of advanced materials. Here, the antimicrobial activity on material surfaces is measured by two methods that complement each other: one is based on the agar disk diffusion test, and the other is a standard procedure based on the ISO 22196:2007 norm.

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